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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Versatile Fluorinated Derivatives of Triphenylamine as Hole-Transporters and Blue-Violet Emitters in Organic Light-Emitting Devices
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Versatile Fluorinated Derivatives of Triphenylamine as Hole-Transporters and Blue-Violet Emitters in Organic Light-Emitting Devices

机译:三苯胺的多功能氟化衍生物作为有机发光器件中的空穴传输剂和蓝紫色发射体

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摘要

A series of triphenylamine derivatives end-capped with various fluorinated phenyl (TPAF) have been designed and synthesized for the application in organic light-emitting devices (OLEDs). By changing the substitution pattern of electron-withdrawing groups, such as F and CF3, the ability of hole-transport, energy levels, and thermal stability of these, TPAF are tuned, which are supported by density functional study of their geometry and electronic structure. TPAF can be used as either hole-transporters or blue-violet emitters in OLEDs. Among TPAF, the device with TPA-(2)-F as hole-transport material achieved the maximum current efficiency of 4.7 cd A~(-1), which was much higher than that of the typical N,N'-di(l-naphthalenyI)-N,N'-diphenyl-4,4'-diamine-based device. This good performance of the TPA-(2)-F-based device was attributed to the more balanceable injected carriers in the device by tuning hole injection and transport. More importantly, nondoped blue OLEDs utilizing TPAF as the emitters exhibited blue-violet emissions peaking between 408 and 428 nm with Commission Internationale de L'EcIairage coordinates in a range of (0.16—0.18, 0.06—0.12), which were also expected to be a new material class with an enhanced current efficiency/color purity compromise for future blue light-emitting devices.
机译:已经设计并合成了一系列封端有各种氟化苯基(TPAF)的三苯胺衍生物,以用于有机发光器件(OLED)。通过改变吸电子基团(例如F和CF3)的取代方式,空穴传输能力,能级和热稳定性,对TPAF进行了调整,并通过对其几何形状和电子结构的密度泛函研究的支持。 TPAF可用作OLED中的空穴传输器或蓝紫色发射器。在TPAF中,以TPA-(2)-F作为空穴传输材料的器件实现了4.7 cd A〜(-1)的最大电流效率,这比典型的N,N'-di(l)高得多。 -萘基)-N,N'-二苯基-4,4'-二胺基装置。基于TPA-(2)-F的设备的这种良好性能归因于设备中通过调整空穴注入和传输来更平衡地注入了载流子。更重要的是,利用TPAF作为发射极的非掺杂蓝色OLED的蓝紫色发射峰在408至428 nm之间,国际佣金委员会的坐标在(0.16-0.18,0.06-0.12)范围内,这也有望达到一种新型材料,具有更高的电流效率/色纯度,可用于未来的蓝色发光器件。

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